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Daiki Takeuchi

4 papers here

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • first author3
  • last author1

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • eess.AS4

identity via Semantic Scholar / OpenAlex

most citedSpeech Enhancement using Self-Adaptation and Multi-Head Self-Attention

8 citations · 17 across the 4 of their papers we have counts for

collaborators

4 papers

eess.AS2020★ 8 cited

Speech Enhancement using Self-Adaptation and Multi-Head Self-Attention

Yuma Koizumi, Kohei Yatabe, Marc Delcroix +2

This paper investigates a self-adaptation method for speech enhancement using auxiliary speaker-aware features; we extract a speaker representation used for adaptation directly fro…

eess.AS2020★ 5 cited

Real-time speech enhancement using equilibriated RNN

Daiki Takeuchi, Kohei Yatabe, Yuma Koizumi +2

We propose a speech enhancement method using a causal deep neural network~(DNN) for real-time applications. DNN has been widely used for estimating a time-frequency~(T-F) mask whic…

eess.AS2019★ 1 cited

Invertible DNN-based nonlinear time-frequency transform for speech enhancement

Daiki Takeuchi, Kohei Yatabe, Yuma Koizumi +2

We propose an end-to-end speech enhancement method with trainable time-frequency~(T-F) transform based on invertible deep neural network~(DNN). The resent development of speech enh…

eess.AS2019★ 3 cited

Data-driven design of perfect reconstruction filterbank for DNN-based sound source enhancement

Daiki Takeuchi, Kohei Yatabe, Yuma Koizumi +2

We propose a data-driven design method of perfect-reconstruction filterbank (PRFB) for sound-source enhancement (SSE) based on deep neural network (DNN). DNNs have been used to est…

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